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I'm getting a segfault thrown when using invalid input or the -help flag in the command arguments. It is a re-creation of the Unix expand utility, and its supposed to handle errors in a similar fashion.

int main(int argc, char *argv[]){

  char help1[]= "-help";
  char help2[]= "--help";

  int spaces; //number of spaces to replace tabs

  if (argc==1){ //if only one argument in stack

    //check if asking for help
    if ( (strcmp(argv[1], help1)==0) || (strcmp(argv[1], help2)==0) )
      printHelp(); 

    else
      printError(); //otherwise, print error message    

    //right number of tokens are provided, need to validate them
    } else if (argc>=2){
      spaces= atoi(argv[2]); //assign it to spaces

      parse_file(spaces); //open the stream and pass on
  }     
  return 0;

}

My printerror method:

void printError(){
  fprintf(stderr, "\nInvalid Input.\n");
  fprintf(stderr, "The proper format is myexpand -[OPTION] [NUMBER OF SPACES]\n");
  exit(1);
}

When I try invalid input or the help flag, I get a segfault. Why is this, since I'm checking if the first flag is help?

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1  
Haven't done any C for a while, but aren't arguments 0 indexed? strcmp(argv[1]... should be strcmp(argv[0] and so on? –  Gazler Feb 10 '11 at 20:07
1  
No, argv[0] is the name of your executable. –  chris Feb 10 '11 at 20:11

3 Answers 3

up vote 5 down vote accepted

If a single command-line parameter is passed to your program, argc == 2, so you need to replace

if (argc==1){ //if only one argument in stack

with

if (argc==2){

Note that in most systems argv[0] is the program name and in this case argc is at least 1. You can think of argc as the number of elements in argv. If you’re testing for argv[1], you’re expecting argv to have at least two elements (argv[0] and argv[1]), hence argc needs to be at least 2.

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That was it, thanks. I had made some changes later on in the code, and those changes needed to be reflected in the argc test. –  Jason Feb 10 '11 at 20:10

argv[0] counts too, so if argc==1 argv[1] is NULL

Your help message should be displayed if there are less than 2 parameter given, hence

if (argc<3)
    printHelp();
else if(...)
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Upon initialization, the arguments to main will meet the following requirements according to this.

  • argc is greater than zero.
  • argv[argc] is a null pointer.
  • argv[0] through to argv[argc-1] are pointers to strings whose meaning will be determined by the program.
  • argv[0] will be a string containing the program's name or a null string if that is not available. Remaining elements of argv represent the arguments supplied to the program. In cases where there is only support for single-case characters, the contents of these strings will be supplied to the program in lower-case.

As such, you are passing in argv[argc] (which is a null pointer) to strcmp.

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